Open access · CC-BY
via OpenAlex
Abrogation of Age-Induced MicroRNA-195 Rejuvenates the Senescent Mesenchymal Stem Cells by Reactivating Telomerase
Motoi Okada, Ha Won Kim, Kaoru Matsuura, Yi-Gang Wang, Meifeng Xu, Muhammad Ashraf
Stem Cells · 2015 · ▲ 125 citations
Telomere attrition
Cellular senescence
Stem-cell exhaustion
Stem-cell therapy
Telomerase activation
Human
Abstract
Previously, we reported that a novel subpopulation of young mesenchymal stem cells (YMSCs) existed in old bone marrow, which possessed high antiaging properties as well as excellent efficacy for cardiac repair. MicroRNAs (miRNAs) have emerged as key regulators in post-transcriptional gene expression programs, and however, it is unknown whether miRNAs directly control stem cell senescence(definition). Here we present the first evidence that miR-195 overexpressed in old MSCs (OMSCs) induces stem cell senescence deteriorating their regenerative ability by directly deactivating telomerase reverse transcriptase (Tert), and abrogation of miR-195 can reverse stem cell aging. MiRNAs profiling analysis in YMSCs and OMSCs by microarray showed that miR-140, miR-146a/b, and miR-195 were significantly upregulated in OMSCs, which led us to hypothesize that these are age-induced miRNAs involved in stem cell senescence. Of these miRNAs, we found miR-195 directly targeted 3'-untranslated region of Tert gene by computational target prediction analysis and luciferase assay, and knockdown of miR-195 significantly increased Tert expression in OMSCs. Strikingly, miR-195 inhibition significantly induced telomere(definition) relengthening in OMSCs along with reduced expression of senescence-associated β-galactosidase. Moreover, silencing miR-195 in OMSCs by transfection of miR-195 inhibitor significantly restored antiaging factors expression including Tert and Sirt1 as well as phosphorylation of Akt and FOXO1. Notably, abrogation of miR-195 markedly restored proliferative abilities in OMSCs. Transplantation of OMSCs with knocked out miR-195 reduced infarction size and improved LV function. In conclusion, rejuvenation of aged stem cells by miR-195 inhibition would be a promising autologous therapeutic strategy for cardiac repair in the elderly patients.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1002/stem.2211
- Canonical
- link ↗
- Fetched
- 2026-06-22 MST
Cite this
APA
Okada, M., Kim, H.W., Matsuura, K., Wang, Y., Xu, M., & Ashraf, M. (2015). Abrogation of Age-Induced MicroRNA-195 Rejuvenates the Senescent Mesenchymal Stem Cells by Reactivating Telomerase. <em>Stem Cells</em>. https://doi.org/10.1002/stem.2211
Vancouver
Okada M, Kim HW, Matsuura K, Wang Y, Xu M, Ashraf M. Abrogation of Age-Induced MicroRNA-195 Rejuvenates the Senescent Mesenchymal Stem Cells by Reactivating Telomerase. Stem Cells. 2015. doi:10.1002/stem.2211.
BibTeX
@article{motoi2015Abroga,
title = {Abrogation of Age-Induced MicroRNA-195 Rejuvenates the Senescent Mesenchymal Stem Cells by Reactivating Telomerase},
author = {Motoi Okada and Ha Won Kim and Kaoru Matsuura and Yi-Gang Wang and Meifeng Xu and Muhammad Ashraf},
journal = {Stem Cells},
year = {2015},
doi = {10.1002/stem.2211},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Experimental Gerontology 2005
Citation only
Mesenchymal stem cell aging
Rejuvenation Research 2010
Citation only
The Effect of Age on the Efficacy of Human Mesenchymal Stem Cell Transplantation after a Myocardial Infarction
Journal of Clinical Investigation 2016
Open access · OA
Telomerase reverse transcriptase promotes cancer cell proliferation by augmenting tRNA expression
Stem Cells International 2021
Open access · CC-BY
Metformin-Induced MicroRNA-34a-3p Downregulation Alleviates Senescence in Human Dental Pulp Stem Cells by Targeting CAB39 through the AMPK/mTOR Signaling Pathway
Stem Cells 2016
Open access · OA
NANOG Reverses the Myogenic Differentiation Potential of Senescent Stem Cells by Restoring ACTIN Filamentous Organization and SRF-Dependent Gene Expression
Bone 2020
Preprint · OA